Magnetization of Zn1-xCoxO nanoparticles: single-ion anisotropy and spin clustering
X. Gratens, B. de Abreu Silva, M. I. B. Bernardi, H. B. de Carvalho,, A. Franco Jr, V.A. Chitta

TL;DR
This study investigates the magnetic properties of Zn1-xCoxO nanoparticles, revealing that single-ion anisotropy and non-random cobalt ion distribution significantly influence their magnetization behavior across different synthesis methods.
Contribution
It provides new insights into the role of single-ion anisotropy and cobalt clustering in the magnetic properties of Zn1-xCoxO nanoparticles, regardless of synthesis method.
Findings
Single-ion anisotropy parameter D is slightly larger than bulk value.
Enhanced antiferromagnetic spin clustering independent of growth method.
Shell thickness of nanoparticles estimated from local concentration analysis.
Abstract
The magnetization of Zn1-xCoxO (0.0055 < x < 0.073) nanoparticles has been measured as a function of temperature T (1.7 K < T , 10 K) and for magnetic field up to 65 kOe using a SQUID magnetometer. Samples were synthesized by three different growth methods: microwave-assisted hydrothermal, combustion reaction and sol-gel. For all studied samples, the magnetic properties derive from the antiferromagnetic (AF) spin clustering due to the Co2+ nearest neighbors. At T >= 6 K, the magnetization of the Co2+ ions has a Brillouin-type behavior, but below 6 K, it shows a notable deviation. We have shown that the observed deviation may be derived from single-ion anisotropy (SIA) with uniaxial symmetry. Results of fits show that the axial-SIA parameter D (typically D = 4.4 K) is slightly larger that the bulk value D = 3.97 K. No significant change of D has been observed as a function of the Co…
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Taxonomy
TopicsAdvanced Condensed Matter Physics · Physics of Superconductivity and Magnetism · Theoretical and Computational Physics
